带超疏水涂层的电除尘器,可有效过滤亚微米颗粒

IF 7.4 Q1 ENGINEERING, ENVIRONMENTAL
Chenhua Wang, Chenzheng Yan, Junjie Liu*, Zhiyang Zhang and Xu Han*, 
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引用次数: 0

摘要

静电除尘器因其成本效益高和建筑物维修费用低而得到广泛利用。然而,现有的esp对亚微米颗粒的过滤效率较低,且载尘后的清洗效率较低。本文提出了一种具有超疏水涂层的电潜泵,并考虑了电极间隙、充电电压、空气速度和电场强度对亚微米粒子的影响。结果表明,由于低表面能基团和高粗糙结构的结合,水在涂层表面的接触角和滑动角分别为158.0°±1.1°和2.1°±0.5°。亚微米颗粒的过滤效率随充电电压和电场强度的增加而增加,但随空气流速和电极间隙的增加而降低。当风速为2.5 m/s时,ESP对0.3 ~ 0.5 μm颗粒的过滤效率达到96.5%。28 d内过滤效率保持较高,平均为95.6%。ESP对0.3 ~ 0.5 μm颗粒的过滤效率可恢复到初始效率的99.8%,而现有ESP的过滤效率可恢复到67.5%。经过6次循环后,ESP对0.3 ~ 0.5 μm颗粒的过滤效率仍保持在95.0%左右。所提出的ESP在清洁和可持续建筑环境的通风系统中具有很大的空气过滤潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electrostatic Precipitator with a Superhydrophobic Coating for Efficient Filtration of Submicron Particles

Electrostatic Precipitator with a Superhydrophobic Coating for Efficient Filtration of Submicron Particles

Electrostatic precipitators (ESPs) have been extensively exploited owing to their cost-effectiveness and low-maintenance options in buildings. However, existing ESPs have low filtration efficiency for submicron particles and inefficient cleaning after dust loading. Here, an ESP with a superhydrophobic coating was proposed, and the effects of the electrode gap, charging voltage, air velocity and electric field strength of the ESP on submicron particles were considered. The results revealed that the contact angle and sliding angle of the water on the coating surface were 158.0° ± 1.1° and 2.1° ± 0.5°, respectively, due to the combination of low-surface-energy groups and highly rough structures. The filtration efficiency of the submicron particles increased with increasing charging voltage and electric field strength but decreased with increasing air velocity and electrode gap. When the air velocity was 2.5 m/s, the filtration efficiency of the ESP for 0.3–0.5 μm particles reached 96.5%. The filtration efficiency remained relatively high for 28 days, with an average of 95.6%. The filtration efficiency of the ESP for 0.3–0.5 μm particles can be restored to 99.8% of the initial efficiency, while the restoration of existing ESP is 67.5%. The ESP can maintain the filtration efficiency of 0.3–0.5 μm particles at approximately 95.0% after six cycles. The proposed ESP has great air filtering potential in ventilation systems for clean and sustainable building environments.

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来源期刊
ACS ES&T engineering
ACS ES&T engineering ENGINEERING, ENVIRONMENTAL-
CiteScore
8.50
自引率
0.00%
发文量
0
期刊介绍: ACS ES&T Engineering publishes impactful research and review articles across all realms of environmental technology and engineering, employing a rigorous peer-review process. As a specialized journal, it aims to provide an international platform for research and innovation, inviting contributions on materials technologies, processes, data analytics, and engineering systems that can effectively manage, protect, and remediate air, water, and soil quality, as well as treat wastes and recover resources. The journal encourages research that supports informed decision-making within complex engineered systems and is grounded in mechanistic science and analytics, describing intricate environmental engineering systems. It considers papers presenting novel advancements, spanning from laboratory discovery to field-based application. However, case or demonstration studies lacking significant scientific advancements and technological innovations are not within its scope. Contributions containing experimental and/or theoretical methods, rooted in engineering principles and integrated with knowledge from other disciplines, are welcomed.
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